The same principles, with greater mathematical complications, apply
to the other elements. There is, however, with some of the latest
elements, a phenomenon which cannot have any analogue in hydrogen, and
that is radio-activity. When an atom is radio-active, it emits rays of
three kinds, called respectively α-rays, β-rays, and γ-rays. Of these,
the γ-rays are analogous to light, but of much higher frequencies,
or shorter wave-lengths; we need not further concern ourselves with
them. The α-rays and β-rays, on the contrary, are important as our
chief source of knowledge concerning the nuclei of atoms. It is found
that the α-rays consist of helium nuclei, while the β-rays consist
of electrons. Both come out of the nucleus, since the atom after
radio-activity disruption is a different element from what it was
before. But no one knows just why the nucleus disintegrates when it
does, nor why, in a piece of radium, for example, some atoms break down
while others do not.
The three principal sources of our knowledge concerning atoms have been
the light they emit, X-rays and radio-activity. As everyone knows,
when the light emitted by a glowing gas is passed through a prism, it
is found to consist of well-defined lines of different colours, which
are characteristic for each element, and constitute what is called its
“spectrum”. The spectrum extends beyond the range of visible light,
both into the infra-red and into the ultra-violet. In the latter
direction, it extends right into the region of X-rays, which are only
ultra-ultra-violet light. By means of crystals, it has been found
possible to study X-ray spectra as exactly as those of ordinary light.
The great merit of Bohr’s theory was that it explained why elements
have the spectra they do have, which had, before, been a complete
mystery. In the cases of hydrogen and positively electrified helium,
the explanation, particularly as extended by the German physicist
Sommerfeld, gave the most minute numerical agreement between theory
and observation; in other cases, mathematical difficulties made
this completeness impossible, but there was every reason to think
that the same principles were adequate. This was the main reason for
accepting Bohr’s theory; and certainly it was a very strong one. It
was found that visible light enabled us to study the outer rings of
planetary electrons, X-rays enabled us to study the inner rings,
and radio-activity enabled us to study the nucleus. For the latter
purpose, there are also other methods, more particularly Rutherford’s
“bombardment”, which aims at breaking up nuclei by firing projectiles
at them, and sometimes succeeds in making a hit in spite of the
smallness of the target.
Public-domain text, read in full here on John Shaqi.
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